282 resultados para RHODNIUS-PROLIXUS MIDGUT
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The intestinal epithelial cells of ticks are fundamental for their full feeding and reproductive success, besides being considered important sites for the development of pathogens. Rhipicephalus sanguineus ticks are known for their great medical and veterinary importance, and for this reason, the knowledge of their intestinal morphology may provide relevant subsidies for the control of these animals, either by direct acaricidal action over these cells or by the production of vaccines. Therefore, this study aimed to describe the midgut morphology of male and female R. sanguineus ticks in different feeding stages, by means of histological analysis. Significant differences were observed between the genders, and such alterations may refer mainly to the distinct demands for nutrients, much higher in females, which need to develop and carry out the egg-laying process. In general, the midgut is coated by a thin muscle layer and presents a pseudostratified epithelium, in which two basic types of cells can be observed, connected to a basal membrane - generative or stem and digestive cells. The latter was classified as follows: residual, deriving from the phase anterior to ecdysis; pinocytic, with vesicles containing liquid or pre-digested components of blood; phagocytic, with entire cells or remnants of nuclear material inside cytoplasmic vesicles; and mature, free in the lumen. Digestion is presumably intracellular and asynchronous and corresponds to a process which starts with the differentiation of generative cells into pinocytic digestive cells, which subsequently start to phagocytize intact blood cells and finally detach from the epithelium, being eliminated with feces. © 2012 Springer-Verlag Berlin Heidelberg.
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The effects of ingested neem oil, a botanical insecticide obtained from the seeds of the neem tree, Azadirachta indica, on the midgut cells of predatory larvae Ceraeochrysa claveri were analyzed. C. claveri were fed on eggs of Diatraea saccharalis treated with neem oil at a concentration of 0.5%, 1% and 2% during throughout the larval period. Light and electron microscopy showed severe damages in columnar cells, which had many cytoplasmic protrusions, clustering and ruptured of the microvilli, swollen cells, ruptured cells, dilatation and vesiculation of rough endoplasmic reticulum, development of smooth endoplasmic reticulum, enlargement of extracellular spaces of the basal labyrinth, intercellular spaces and necrosis. The indirect ingestion of neem oil with prey can result in severe alterations showing direct cytotoxic effects of neem oil on midgut cells of C. claveri larvae. Therefore, the safety of neem oil to non-target species as larvae of C. claveri was refuted, thus the notion that plants derived are safer to non-target species must be questioned in future ecotoxicological studies. © 2012 Elsevier Ltd.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Studies of morphological and ultrastructural alterations in target organs have been useful for evaluating the sublethal effects of biopesticides regarded as safe for non-target organisms in ecotoxicological analyses. One of the most widely used biopesticides is neem oil, and its safety and compatibility with natural enemies have been further clarified through bioassays performed to analyze the effects of indirect exposure by the intake of poisoned prey. Thus, this study examined the cellular response of midgut epithelial cells of the adult lacewing, Ceraeochrysa claveri, to neem oil exposure via intake of neem oil-contaminated prey during the larval stage. C. claveri larvae were fed Diatraea saccharalis eggs treated with neem oil at concentrations of 0.5%, 1% and 2% throughout the larval stage. The adult females obtained from these treatments were used at two ages (newly emerged and at the start of oviposition) in morphological and ultrastructural analyses. Neem oil was found to cause pronounced cytotoxic effects in the adult midgut, such as cell dilation, emission of cytoplasmic protrusions, cell lysis, loss of integrity of the cell cortex, dilation of cisternae of the rough endoplasmic reticulum, swollen mitochondria, vesiculated appearance of the Golgi complex and dilated invaginations of the basal labyrinth. Epithelial cells responded to those injuries with various cytoprotective and detoxification mechanisms, including increases in cell proliferation, the number of calcium-containing cytoplasmic granules, and HSP 70 expression, autophagic processes and the development of smooth endoplasmic reticulum, but these mechanisms were insufficient for recovery from all of the cellular damage to the midgut. This study demonstrates that neem oil exposure impairs the midgut by causing sublethal effects that may affect the physiological functions of this organ, indicating the importance of studies of different life stages of this species and similar species to evaluate the safe and compatible integrated use of biopesticides.
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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A doença de Chagas, causada pelo protozoário flagelado Trypanosoma cruzi, foi descrita pelo pesquisador brasileiro Carlos Chagas em 1909. É transmitida ao homem por insetos hemípteros conhecidos como barbeiros dos quais os gêneros mais importantes são Panstrongylus, Rhodnius e Triatoma. Essa zoonose representa um risco para aproximadamente 20 milhões de pessoas em todo o mundo, principalmente na América Latina. Para tentar explicar as diferentes manifestações observadas na doença de Chagas, vários estudos foram realizados com intuito de averiguar as possíveis correlações entre as formas clínicas com a variabilidade genética do parasito. Algumas hipóteses estão relacionadas provavelmente ao fato de a doença ser um processo multifatorial, em que tanto aspectos do parasito como do hospedeiro estão inter-relacionados ou ainda a escolha inadequada de alvos como marcadores de patogenicidade na tentativa de estabelecer a correlação entre as formas clínicas e a variabilidade genética do parasito. Com o intuito de contribuir para ampliar o conhecimento sobre as populações de T. cruzi, foi realizada a cinética de crescimento em meio LIT e o estudo genotípico de seis cepas de T. cruzi isoladas de exemplares de R. montenegrensis, T. rubrovaria e T. sordida por meio de marcadores genotípicos utilizando as sequência dos genes 24Sα do DNA ribossomal, HSP60 e GPI.
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A doença de Chagas, causada pelo protozoário flagelado Trypanosoma cruzi, foi descrita pelo pesquisador brasileiro Carlos Chagas em 1909. É transmitida ao homem por insetos hemípteros conhecidos como barbeiros dos quais os gêneros mais importantes são Panstrongylus, Rhodnius e Triatoma. Essa zoonose representa um risco para aproximadamente 20 milhões de pessoas em todo o mundo, principalmente na América Latina. Para tentar explicar as diferentes manifestações observadas na doença de Chagas, vários estudos foram realizados com intuito de averiguar as possíveis correlações entre as formas clínicas com a variabilidade genética do parasito. Algumas hipóteses estão relacionadas provavelmente ao fato de a doença ser um processo multifatorial, em que tanto aspectos do parasito como do hospedeiro estão inter-relacionados ou ainda a escolha inadequada de alvos como marcadores de patogenicidade na tentativa de estabelecer a correlação entre as formas clínicas e a variabilidade genética do parasito. Com o intuito de contribuir para ampliar o conhecimento sobre as populações de T. cruzi, foi realizada a cinética de crescimento em meio LIT e o estudo genotípico de seis cepas de T. cruzi isoladas de exemplares de R. montenegrensis, T. rubrovaria e T. sordida por meio de marcadores genotípicos utilizando as sequência dos genes 24Sα do DNA ribossomal, HSP60 e GPI.